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Glass-welding with USP-Lasers and long working distances

机译:玻璃焊接带USP-Lasers和长工作距离

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摘要

The joining of optical glasses is a challenge even with the latest technology. Welding with ultrashort pulsed lasers is a way to join similar or dissimilar glasses without additives or macroscopic thermal tensions. The laser beam is focused through the work piece on the interface to be welded. Due to the high intensity in the laser focus, the beam is absorbed via nonlinear effects in a volume with about 20 μm in diameter. Several laser pulses heat up the material to the working point, while the thermal conductivity limits the heat affected zone well below 1 mm. This process is usually conducted with microscope objectives. Their short working distance limits the thickness of the work piece, the usable laser power and the feed rate of the process. To increase the possible dimensions of the welding partners and the process speed to industrial levels, we present USP-welding with a galvoscanner and a common F-theta-lens. Despite self-focusing effects, our experiments show that the process is stable and controllable. Furthermore, filamentation of the laser beam occurs and long cylindrical weld zones of some micrometers diameter and several hundreds of micrometers height are generated. The enormous length of this molten zone significantly lowers the demands on the work piece adjustment. Tensile tests were conducted on the welded samples. The tests show that the weld can reach a breaking strength in the order of magnitude of the base material.
机译:即使使用最新技术也是一种挑战,光学眼镜的加入是挑战。用超短脉冲激光焊接是一种加入类似或不同玻璃的方法,没有添加剂或宏观热张力。激光束通过待焊接的界面上的工件聚焦。由于激光焦点中的高强度,光束通过直径约20μm的体积中的非线性效应被非线性效应吸收。几个激光脉冲将材料加热到工作点,而导热率将热影响区限制在1mm以下。该过程通常用显微镜目标进行。它们的短工作距离限制了工件的厚度,可用的激光功率和过程的进给速率。为了提高焊接伙伴的可能尺寸和工艺速度与工业水平,我们用GALVOSCANNER和一个共同的F-THEA镜头呈现USP焊接。尽管自我聚焦效果,我们的实验表明该过程稳定可控。此外,发生激光束的丝状,并且产生一些微米直径的长圆柱形焊区和几百微米高度。这种熔融区的巨大长度显着降低了对工件调整的需求。在焊接样品上进行拉伸试验。该测试表明,焊缝可以按基材的大小达到断裂强度。

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